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Privacy-Aware Knowledge Discovery from Location Data

机译:从位置数据发现具有隐私意识的知识

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摘要

Spatio-temporal, geo-referenced datasets are growing rapidly, and will be more in the near future. This phenomenon is mostly due to the daily collection of telecommunication data from mobile phones and other location-aware devices and is expected to enable novel classes of applications based on the extraction of behavioral patterns from mobility data. Such patterns could be used for instance in traffic and sustainable mobility management (e.g., to study the accessibility to services), urban planning, environmental monitoring, and collaborative location-based services. Clearly, in these applications privacy is a concern, since some knowledge may be sensitive, or an over-specific pattern may reveal the behaviour of groups of few individual. In this paper we focus on automated privacy-preserving methods we developed for extracting and sharing user- consumable forms of knowledge from large amounts of raw data referenced in space and in time.
机译:时空,地理参考数据集正在快速增长,并且在不久的将来将会更多。这种现象主要归因于每天从移动电话和其他位置感知设备收集电信数据,并有望基于从移动性数据中提取行为模式来实现新型的应用程序。这样的模式可用于例如交通和可持续交通管理(例如,研究服务的可及性),城市规划,环境监测和基于位置的协作服务。显然,在这些应用程序中,隐私是一个问题,因为某些知识可能是敏感的,或者过分具体的模式可能会揭示少数几个人的行为。在本文中,我们专注于我们开发的自动隐私保护方法,该方法用于从时空引用的大量原始数据中提取和共享用户可使用的知识形式。

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